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vivit-b-16x2-kinetics400-ft-76388

This model is a fine-tuned version of google/vivit-b-16x2-kinetics400 on an unknown dataset. It achieves the following results on the evaluation set:

  • Loss: 0.9924
  • Accuracy: 0.5595

Model description

More information needed

Intended uses & limitations

More information needed

Training and evaluation data

More information needed

Training procedure

Training hyperparameters

The following hyperparameters were used during training:

  • learning_rate: 5e-05
  • train_batch_size: 8
  • eval_batch_size: 8
  • seed: 42
  • optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
  • lr_scheduler_type: linear
  • lr_scheduler_warmup_ratio: 0.1
  • training_steps: 5500

Training results

Training Loss Epoch Step Validation Loss Accuracy
1.1083 0.0202 111 1.1112 0.3347
1.0789 1.0202 222 1.0576 0.4259
1.0767 2.0202 333 1.0863 0.4246
1.1114 3.0202 444 1.1061 0.3704
1.0832 4.0202 555 1.0536 0.4193
1.0622 5.0202 666 1.0720 0.4577
1.0874 6.0202 777 1.0304 0.4709
0.9742 7.0202 888 1.0340 0.4511
0.9848 8.0202 999 1.0367 0.4669
1.12 9.0202 1110 1.0269 0.4193
1.0484 10.0202 1221 1.0105 0.4511
0.9445 11.0202 1332 1.0052 0.4881
1.032 12.0202 1443 1.0365 0.4524
0.987 13.0202 1554 1.0019 0.5106
1.0797 14.0202 1665 1.0128 0.4656
0.9196 15.0202 1776 1.0431 0.5013
1.0727 16.0202 1887 1.0016 0.5344
0.9481 17.0202 1998 0.9983 0.5265
0.9034 18.0202 2109 1.0221 0.5013
0.8569 19.0202 2220 0.9825 0.5265
0.9256 20.0202 2331 0.9678 0.5397
1.0311 21.0202 2442 0.9574 0.5106
0.8651 22.0202 2553 1.0048 0.4987
0.9384 23.0202 2664 0.9717 0.5225
0.9545 24.0202 2775 0.9763 0.5172
0.9187 25.0202 2886 0.9628 0.5212
0.7953 26.0202 2997 0.9523 0.5265
0.8793 27.0202 3108 0.9977 0.5370
0.7897 28.0202 3219 0.9965 0.5317
0.8034 29.0202 3330 0.9272 0.5463
0.8469 30.0202 3441 0.9231 0.5384
0.79 31.0202 3552 0.9281 0.5728
0.8516 32.0202 3663 0.9310 0.5569
0.8138 33.0202 3774 0.9582 0.5675
0.8322 34.0202 3885 0.9741 0.5622
0.8064 35.0202 3996 0.9573 0.5754
0.8767 36.0202 4107 0.9290 0.5714
0.7978 37.0202 4218 0.9449 0.5728
0.8113 38.0202 4329 0.9493 0.5780
0.8065 39.0202 4440 0.9015 0.5926
0.7989 40.0202 4551 0.9139 0.5886
0.6323 41.0202 4662 0.9004 0.5992
0.6847 42.0202 4773 0.9083 0.6124
0.7711 43.0202 4884 0.9023 0.5979
0.5815 44.0202 4995 0.9247 0.6058
0.8821 45.0202 5106 0.9071 0.6058
0.7436 46.0202 5217 0.8924 0.6085
0.6863 47.0202 5328 0.8965 0.6111
0.7035 48.0202 5439 0.8941 0.6045
0.6348 49.0111 5500 0.8950 0.6124

Framework versions

  • Transformers 4.41.2
  • Pytorch 1.13.0+cu117
  • Datasets 2.20.0
  • Tokenizers 0.19.1
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